Annotated Draft Genomes of Two Caddisfly Species Plectrocnemia conspersa CURTIS and Hydropsyche tenuis NAVAS (Insecta: Trichoptera)

Author:

Heckenhauer Jacqueline12,Frandsen Paul B134,Gupta Deepak K1,Paule Juraj5,Prost Stefan16,Schell Tilman1,Schneider Julio V2,Stewart Russell J7,Pauls Steffen U128

Affiliation:

1. LOEWE Centre for Translational Biodiversity Genomics (LOEWE‐TBG), Frankfurt, Germany

2. Department of Terrestrial Zoology, Entomology III, Senckenberg Research Institute and Natural History Museum Frankfurt, Frankfurt, Germany

3. Department of Plant & Wildlife Sciences, Brigham Young University, Provo, UT

4. Data Science Lab, Smithsonian Institution, Washington, DC

5. Department of Botany and Molecular Evolution, Senckenberg Research Institute and Natural History Museum Frankfurt, Frankfurt, Germany

6. South African National Biodiversity Institute, National Zoological Gardens of South Africa, Pretoria, South Africa

7. Department of Biomedical Engineering, University of Utah, Salt Lake City, UT

8. Institute for Insect Biotechnology, Justus-Liebig-University, Gießen, Germany

Abstract

Abstract Members of the speciose insect order Trichoptera (caddisflies) provide important ecosystem services, for example, nutrient cycling through breaking down of organic matter. They are also of industrial interest due to their larval silk secretions. These form the basis for their diverse case-making behavior that allows them to exploit a wide range of ecological niches. Only five genomes of this order have been published thus far, with variable qualities regarding contiguity and completeness. A low-cost sequencing strategy, that is, using a single Oxford Nanopore flow cell per individual along with Illumina sequence reads was successfully used to generate high-quality genomes of two Trichoptera species, Plectrocnemia conspersa and Hydropsyche tenuis. Of the de novo assembly methods compared, assembly of low coverage Nanopore reads (∼18×) and subsequent polishing with long reads followed by Illumina short reads (∼80–170× coverage) yielded the highest genome quality both in terms of contiguity and BUSCO completeness. The presented genomes are the shortest to date and extend our knowledge of genome size across caddisfly families. The genomic region that encodes for light (L)-chain fibroin, a protein component of larval caddisfly silk was identified and compared with existing L-fibroin gene clusters. The new genomic resources presented in this paper are among the highest quality Trichoptera genomes and will increase the knowledge of this important insect order by serving as the basis for phylogenomic and comparative genomic studies.

Publisher

Oxford University Press (OUP)

Subject

Genetics,Ecology, Evolution, Behavior and Systematics

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